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ADP1052ACPZ-R7 Folha de dados(PDF) 23 Page - Analog Devices

Nome de Peças ADP1052ACPZ-R7
Descrição Electrónicos  Digital Controller for Isolated Power Supply with PMBus Interface
PDF  113 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
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ADP1052ACPZ-R7 Folha de dados(HTML) 23 Page - Analog Devices

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Data Sheet
ADP1052
Rev. B | Page 23 of 113
As shown in Figure 23, if the digital compensator output
remains unchanged and the VF voltage changes to 200% of its
original value (still smaller than 1.6 V), the modulation of the
OUTx edges (that are configured for modulation) is divided by 2.
Use Register 0xFE3D, Bits[3:2] to program the optional input
voltage feedforward function.
The VF pin also has a low speed, high resolution Σ-Δ ADC. The
ADC has an update rate of 800 Hz with 11-bit resolution. The
ADC output value is stored in Register 0xFEAC and converted
to the READ_VIN command (Register 0x88). This value provides
information for the input voltage monitoring and flag functions.
VF
DIGITAL
FILTER
OUTPUT
OUTx
tS
tS
tMODULATION
t
MODULATION
Figure 23. Closed-Loop Input Voltage Feedforward Changes
Modulation Values
OPEN-LOOP INPUT, VF OPERATION
The ADP1052 can run in open-loop input voltage feedforward
operation mode. In this mode, the input voltage is sensed as the
feedforward signal for generation of the PWM outputs.
As shown in Figure 24, the digital compensator output is
modified by a programmable modulation reference.
DPWM
ENGINE
VF
1/x
Σ-∆
ADC
READ_VIN
REG 0x88
REG 0x35,
REG 0x36
FEED-
FORWARD
ADC
0.5V TO 1.6V
0V TO 1.6V
VIN_LOW
FLAG REG 0x7C[3]
REG 0xFE29[5]
VIN_UV_FAULT
FLAG REG 0x7C[4]
FROM THE VIN
SENSE CIRCUIT
MODULATION
REFERENCE
REG 0xFE63 AND REG 0xFE64
Figure 24. Open-Loop Feedforward Operation
The VF value, which represents the input voltage, is fed into the
feedforward ADC to divide the modulation reference. The
result of this division is then fed into the PWM engine. The
duty cycle value is in inverse proportion to the input voltage.
Using the following equations:
D =
IN
NOM
IN
V
V
_
× (tREF × fSW)
and
VOUT =
n
D
VIN
where D is the duty cycle value and VOUT is the output voltage.
The output voltage can be derived by
VOUT =
n
f
t
V
SW
REF
NOM
IN
_
where:
VIN_NOM is the nominal input voltage.
VIN is the input voltage.
tREF is the modulation reference, which is set by Register 0xFE63
and Register 0xFE64.
fSW is the switching frequency.
n is the turn ratio of the main transformer.
In the equation to derive VOUT, the input voltage, VIN, is cancelled
out. Therefore, the output voltage does not change when the
input voltage changes.
Register 0xFE63 and Register 0xFE64 set the modulation reference,
based on the target output voltage and the nominal input voltage
at which the VF pin voltage is 1 V (see Figure 24).
The PWM settings of open-loop input VF operation are similar to
those of general closed-loop operation. The falling edge timings,
rising edge timings, and modulation are set in the same manner
as for closed-loop operation, by using Register 0xFE3E to Regis-
ter 0xFE52.
Register 0xFE09[4:3] sets the soft start speed of the
modulation edges.
Register 0xFE3D[6] enables open-loop feedforward
operation.
Register 0xFE3D[7] enables the soft start procedure of
open-loop feedforward operation.
The flag settings of open-loop input VF operation are also similar
to those of general closed-loop operation.
Because the output voltage is not regulated in the same manner as
closed-loop operation, some settings are not functional, such as
the VOUT setting, the digital compensator settings, and the
constant current mode setting. Other settings can be programmed
in a manner that is similar to general closed-loop operation.
OPEN-LOOP OPERATION
The ADP1052 can also run in open-loop operation mode.
In this mode, the rising edges and falling edges of the PWM
outputs are fixed during normal operation. Therefore, the output
voltage varies with the input voltage. The topologies include full
bridge, half bridge, and push pull converters.



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